首页> 外文期刊>Materials transactions >Spark Sintering of TiB2 Reinforced Fe Matrix Composites with Both High Thermal Conductivity and Hardness, and Their Microstructural Characterizations
【24h】

Spark Sintering of TiB2 Reinforced Fe Matrix Composites with Both High Thermal Conductivity and Hardness, and Their Microstructural Characterizations

机译:TIB2增强Fe基复合材料的火花烧结具有高导热性和硬度,以及它们的微观结构特征

获取原文
获取原文并翻译 | 示例
           

摘要

TiB2 reinforced Fe matrix composites were investigated for their potential as a new generation of hot work tools which are mainly characterized by high thermal conductivity and high hardness in comparison with conventional materials. In this work, Fe-30 vol%TiB2 composites were sintered at 1373 K for different holding times (0, 0.3, 0.6, 1.8 and 3.6 ks). Apart from Fe and TiB2, newly formed phases of Fe2B and TiC were found in all sintered compacts. A good Fe/TiB2 interfacial cohesion was confirmed at atomic level at 0 ks, which was due to the occurrence of the special orientation relationship between {110} planes of Fe and {10 (1) over bar0} planes of TiB2. The observation of dislocations in TiB2 particles, attributed to the activation of slip systems, showed the plastic deformation ability of TiB2 at high temperature. The reaction between Fe and TiB2 was due to TiB2 dissolution in Fe at 1373 K and different diffusion depth of B and Ti atoms in Fe. Consequently, B directly reacted with Fe, since the solubility of B atoms was low in both alpha-Fe and gamma-Fe. TiC probably precipitated from Fe-Ti-C solid solution along Fe grain boundaries in the cooling stage after sparking sintering, leading to a layer of Fe wrapping around TiB2. Among all the compacts, the one sintered at 1373 K for 0.6 ks displayed the excellent properties which were comparable in Vickers hardness and 133% higher in thermal conductivity, compared with that of SKD61 as the commonly used practical material. This work provides a new perspective to fabricate a future generation of hot work tools.
机译:研究了TIB2增强的Fe基质复合材料,以它们作为新一代热工作工具的潜力,其主要具有高导热性和高硬度与常规材料相比。在这项工作中,在1373K的情况下,Fe-30 Vol%Tib2复合材料对于不同的保持时间(0,0.3,0.6,1.8和3.6ks)。除Fe和TiB2外,所有烧结脚部都会发现Fe2b和Tic的新形成阶段。在0 ks的原子水平下确认了良好的Fe / Tib2界面内凝聚,这是由于{110} Fe和{10(1)架的{110}飞机之间的特殊方向关系发生了TIB2的平面。归因于滑动系统的激活,观察TIB2颗粒中的脱位,旨在在高温下塑性变形能力。 Fe和Tib2之间的反应是由于在1373k和Fe的B和Ti原子的不同扩散深度的TIB2溶解。因此,B直接与Fe反应,因为B原子的溶解度在α-Fe和γ-Fe中低。在发出烧结后,TIC可能从冷却阶段的Fe晶界沿Fe-Ti-C固体溶液沉淀出来,导致围绕TIB2周围的Fe包裹。在所有压块中,在1373k时烧结0.6ks的优异性能,与SKD61作为常用的实用材料相比,导热率高的热导电性具有优异的性能。这项工作提供了一种新的视角,以制造未来一代的热工作工具。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号